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Amorphous nickel sulfide nanoparticles anchored on N-doped graphene nanotubes with superior properties for high-performance supercapacitors and efficient oxygen evolution reaction

机译:非晶态镍硫化物纳米粒子固定在n型石墨烯纳米管与优越高性能超级电容器的特性和高效的氧发生反应

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摘要

The rational design of a novel material system with superior properties of energy storage and conversion is a significant work. In this paper, amorphous nickel sulfide nanoparticles anchored on N-doped graphene nanotubes (N-GNTs@NSNs) were firstly synthesized by a facile electrochemical-deposition method, which can serve as free-standing robust supercapacitor electrode materials and electrocatalysts. Stemming from the disordered structure of amorphous active materials and the synergy of novel N-GNT framework materials, the as-prepared N-GNT@NSN electrode unveils prominent capacitive behaviors, including a large specific capacity of 240 mA h g(-1) (2160 F g(-1)), decent rate capability, and outstanding cycling stability (95.8% of capacity retention after 12 000 cycles). An asymmetric supercapacitor with N-GNTs@NSNs as the positive electrode and active carbon (AC) as the negative electrode is further assembled, which shows a maximum energy density of 49.5 W h kg(-1) at a power density of 800 W kg(-1) and robust stability (96.6% capacity retention after 12 000 cycles). Moreover, the electrode also possesses high activities in the oxygen evolution reaction (OER), namely it can attain a current density of 10 mA cm(-2) at an overpotential of 284 mV in 1 M KOH. This finding is not only important for significantly enhancing the electrochemical performances of supercapacitor electrode materials and electrocatalysts, but also lays the solid foundation for their further industrial applications in energy storage and conversion systems.
机译:新材料的合理设计系统能源存储和具有优越的特性转换是一项重要的工作。非晶态镍硫化物纳米粒子固定在n型石墨烯纳米管(N-GNTs@NSNs)首先合成了一个肤浅电化学沉积方法,它可以作为独立的健壮的超级电容器电极材料和electrocatalysts。造成的无序结构非晶态活性材料的协同作用小说N-GNT框架材料,做好准备N-GNT@NSN电极电容揭示突出行为,包括大量的特定能力240毫安h g (1) (2160 F (g(1)),体面的速度能力,杰出的循环稳定性(95.8%的容量保留12 000后周期)。N-GNTs@NSNs正极和活跃碳(AC)作为负电极进一步组装,这显示了一个最大的能量密度49.5 W h公斤(1)在800 W的功率密度公斤(1)和鲁棒稳定性(96.6%产能保留了12 000周期)。电极也具有很高的活动氧进化反应(OER),即它可以获得的电流密度(2)在一个马10厘米过电压284 mV的KOH 1米。不仅是重要的显著提高吗的电化学性能超级电容器电极材料,electrocatalysts,也奠定了坚实的他们的进一步工业的基础在能量储存和转换应用程序系统。

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